Configuring the Remote TROY Print Server

The next step is to configure the EtherWind print server at the remote site. The remote print server can be configured with TROY's XAdmin32 Windows configu- ration utility, or with the EtherWind WebXAdmin browser-based facility.

Before configuring the print server to receive PrintraNet print jobs, check the fol- lowing:

1.Make sure that the E-mail server at the remote site (the receiving end) is con- figured to handle the TCP/IP POP3, and SMTP protocols (SMTP is only required if the notification feature is enabled).

2.Configure the POP3 server on the E-mail server at the remote site with a mail account and password for the remote printer (generally, the mail account name will be the first part of the name that you assigned in step 3 of the previous section; for example, if you assigned the name emailprinter@xyz.com, the account name would be emailprinter). The procedure for configuring a POP3 server varies depending on the operating system of the E-mail server, so con- sult your operating system documentation for details.

3.Make sure that the EtherWind print server is installed and running with TCP/IP enabled and has a valid IP address assigned to it.

Because access to the E-mail server on most networks is usually restricted, you may need to have your network administrator check the configuration and add the mail account.

WebXAdmin allows the print server to be managed by any standard web browser using the TCP/IP protocol. In order to use WebXAdmin, IP address must be assigned to the print server and to the PC used for configuration.

The steps required to configure the print server to receive print jobs from a Windows PC running the PrintraNet software are as follows:

1.Select the name of the desired EtherWind print server from the list by double clicking on it (XAdmin32) or entering its IP address (WebXAdmin).

2.Click on the Internet tab or button.

3.Enter the IP address of the POP3 server (consult your network administrator if you do not know this address).

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TROY Group 802.11b manual Configuring the Remote Troy Print Server

802.11b specifications

TROY Group 802.11b is a significant advancement in wireless networking technology, introduced in the late 1990s. Operating within the 2.4 GHz frequency band, 802.11b provided users with robust connectivity and established a foundation for future wireless standards. This protocol marked a transition from wired networking to wireless, enabling greater mobility and flexibility for users.

One of the main features of the 802.11b standard is its data transmission rate, which supports speeds of up to 11 Mbps. While this may seem modest by today’s standards, it was a groundbreaking achievement at the time. The 802.11b technology utilized Direct Sequence Spread Spectrum (DSSS) modulation, which allowed multiple data streams to coexist with minimal interference. This was crucial in environments with numerous wireless devices.

Security was another important consideration, and 802.11b incorporated Wired Equivalent Privacy (WEP) for data protection. WEP attempted to secure wireless transmissions by encrypting data packets, although it was later found to have vulnerabilities. Nevertheless, it was a starting point for securing wireless communication until more robust security protocols, such as WPA and WPA2, were developed.

The compatibility of 802.11b with earlier standards like 802.11 meant that devices could be mixed and matched, allowing for a smooth transition to wireless networks. With a typical range of around 100 to 300 feet, it was suitable for various environments, from homes to offices. In addition, the protocol facilitated peer-to-peer networking, allowing devices to communicate directly without the need for an access point.

In terms of hardware, 802.11b required compatible wireless network interface cards (NICs) and access points. These devices were increasingly integrated into laptops and desktops, leading to widespread adoption and the growing popularity of wireless networking in everyday life.

In conclusion, TROY Group 802.11b laid the groundwork for modern wireless communication. Its features, including data rates of up to 11 Mbps, DSSS modulation, and initial security measures like WEP, made it a pioneer in the industry. Although it has been succeeded by faster and more secure protocols, the legacy of 802.11b lives on as a crucial development in the evolution of wireless technology, setting the stage for the high-speed and secure connections that users enjoy today.